Model-based adhesive shrinkage compensation for increased bonding repeatability

SPIE LASE Pub Date : 2016-04-22 DOI:10.1117/12.2212527
T. Müller, Christian Schlette, Shunmuganathan Lakshmanan, S. Haag, D. Zontar, S. Sauer, C. Wenzel, C. Brecher, J. Roβmann
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引用次数: 2

Abstract

The assembly process of optical components consists of two phases – the alignment and the bonding phase. Precision - or better process repeatability - is limited by the latter one. The limitation of the alignment precision is given by the measurement equipment and the manipulation technology applied. Today’s micromanipulators in combination with beam imaging setups allow for an alignment in the range of far below 100nm. However, once precisely aligned optics need to be fixed in their position. State o f the art in optics bonding for laser systems is adhesive bonding with UV-curing adhesives. Adhesive bonding is a multi-factorial process and thus subject to statistical process deviations. As a matter of fact, UV-curing adhesives inherit shrinkage effects during their curing process, making offsets for shrinkage compensation mandatory. Enhancing the process control of the adhesive bonding process is the major goal of the activities described in this paper. To improve the precision of shrinkage compensation a dynamic shrinkage prediction is envisioned by Fraunhofer IPT. Intense research activities are being practiced to gather a deeper understanding of the parameters influencing adhesive shrinkage behavior. These effects are of different nature – obviously being the raw adhesive material itself as well as its condition, the bonding geometry, environmental parameters like surrounding temperature and of course process parameters such as curing properties. Understanding the major parameters and linking them in a model-based shrinkage-prediction environment is the basis for improved process control. Results are being deployed by Fraunhofer in prototyping, as well as volume production solutions for laser systems.
基于模型的胶粘剂收缩补偿,增加粘接重复性
光学元件的装配过程包括对准和键合两个阶段。精度或更好的过程可重复性受到后者的限制。对中精度的限制是由测量设备和操作技术所决定的。今天的微操纵器与光束成像装置相结合,可以在远低于100纳米的范围内进行校准。然而,一旦精确对准光学需要固定在他们的位置。激光系统光学粘接的最新技术是用光固化胶粘剂粘接。粘接是一个多因素过程,因此受到统计过程偏差的影响。事实上,光固化胶粘剂在固化过程中继承了收缩效应,因此必须进行收缩补偿的补偿。加强粘接过程的过程控制是本文所述活动的主要目标。为了提高收缩补偿的精度,Fraunhofer IPT提出了动态收缩预测方法。人们正在进行激烈的研究活动,以更深入地了解影响胶粘剂收缩行为的参数。这些影响具有不同的性质-显然是原始粘合剂材料本身及其条件,粘合几何形状,环境参数(如周围温度),当然还有工艺参数(如固化性能)。了解主要参数并将它们链接到基于模型的收缩预测环境中是改进过程控制的基础。研究结果正由弗劳恩霍夫用于激光系统的原型设计和批量生产解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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